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用于缓解城市热岛效应的甲基丙烯酸甲酯基路面涂料的增强耐热性和机械性能

Enhanced Thermal Resistance and Mechanical Performance of Methyl Methacrylate-Based Pavement Coatings for Urban Heat Mitigation.

作者信息

Kim Kwan Kyu, Choi Yoon-Sang, Lee Hee Jun, Rodrigazo Shanelle Aira, Yeon Jaeheum

机构信息

Korea Conformity Laboratories, Chuncheon 24341, Republic of Korea.

Korea Conformity Laboratories, Hoengseong 25234, Republic of Korea.

出版信息

Polymers (Basel). 2025 Feb 23;17(5):586. doi: 10.3390/polym17050586.

Abstract

The urban heat island effect raises road surface temperatures, increasing energy demands and accelerating pavement deterioration. This study evaluates a polymer-based pavement system using methyl methacrylate (MMA) resin with aluminum silicate (AS), glass bubbles (GBs), and microencapsulated n-docosane phase-change material (PCM) to identify the most effective solution. Indoor laboratory tests determined AS as the optimal choice, balancing thermal insulation, workability, and mechanical strength. AS-containing mixtures reduced surface temperatures by ~10 °C and exhibited superior compressive strength (28.2 MPa at 6 wt%) compared to GB (23.7 MPa at 4 wt%) and PCM (27.2 MPa at 6 wt%). AS also maintained stable viscosity at ≤10 wt%, unlike GB and PCM, which became unworkable above 5 wt%. The AS-based system achieved high skid resistance (90.2 BPN), abrasion resistance (0.1% wear after 500,000 cycles), and low VOC emissions (69.64 g/L). Adjusting the resin-to-BPO ratio to 1:0.42 enabled a 30 min curing time at 25 °C, ensuring practical application. These findings highlight AS as the most effective filler for large-scale deployment. Future work should assess long-term durability and optimize formulations for broader adoption in heat-mitigating infrastructure.

摘要

城市热岛效应会提高路面温度,增加能源需求并加速路面老化。本研究评估了一种基于聚合物的路面系统,该系统使用甲基丙烯酸甲酯(MMA)树脂与硅酸铝(AS)、玻璃微珠(GBs)和微胶囊化正二十二烷相变材料(PCM),以确定最有效的解决方案。室内实验室测试确定AS是最佳选择,它在隔热、可加工性和机械强度之间取得了平衡。与GB(4 wt%时为23.7 MPa)和PCM(6 wt%时为27.2 MPa)相比,含AS的混合物使表面温度降低了约10°C,并表现出更高的抗压强度(6 wt%时为28.2 MPa)。与GB和PCM不同,AS在≤10 wt%时能保持稳定的粘度,GB和PCM在超过5 wt%时就无法使用。基于AS的系统具有高防滑性(90.2 BPN)、耐磨性(500,000次循环后磨损0.1%)和低挥发性有机化合物排放(69.64 g/L)。将树脂与过氧化苯甲酰(BPO)的比例调整为1:0.42,可在25°C下实现30分钟的固化时间,确保实际应用。这些发现突出了AS作为大规模应用最有效填料的地位。未来的工作应评估长期耐久性,并优化配方,以便在缓解热效应的基础设施中更广泛地采用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51bb/11902549/8091aebff18d/polymers-17-00586-g001.jpg

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